Biocatalyst including porous enzyme cluster composite immobilized by two-step crosslinking and its utilization as enzymatic biofuel cell

Yongjin Chung, Marcelinus Christwardana, Daniel Chris Tannia, Ki Jae Kim, Yongchai Kwon

Research output: Contribution to journalArticlepeer-review

27 Scopus citations

Abstract

An enzyme cluster composite (TPA/GOx) formed from glucose oxidase (GOx) and terephthalaldehyde (TPA) that is coated onto polyethyleneimine (PEI) and carbon nanotubes (CNTs) is suggested as a new catalyst ([(TPA/GOx)/PEI]/CNT). In this catalyst, TPA promotes inter-GOx links by crosslinking to form a large and porous structure, and the TPA/GOx composite is again crosslinked with PEI/CNT to increase the amount of immobilized GOx. Such a two-step crosslinking (i) increases electron transfer because of electron delocalization by π conjugation and (ii) reduces GOx denaturation because of the formation of strong chemical bonds while its porosity facilitates mass transfer. With these features, an enzymatic biofuel cell (EBC) employing the new catalyst is fabricated and induces an excellent maximum power density (1.62 ± 0.08 mW cm−2), while the catalytic activity of the [(TPA/GOx)/PEI]/CNT catalyst is outstanding. This is clear evidence that the two-step crosslinking and porous structure caused by adoption of the TPA/GOx composite affect the performance enhancement of EBC.

Original languageEnglish
Pages (from-to)172-179
Number of pages8
JournalJournal of Power Sources
Volume360
DOIs
StatePublished - 2017

Keywords

  • Bioelectrical device
  • Enzyme cluster composite
  • Porous structure
  • Terephtalaldehyde (TPA)
  • Two-step crosslinking

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